Title :
Direct Quadratic Minimization Using Magnetic Field-Based Computing
Author :
Sarkar, Sudeep ; Bhanja, Sanjukta
Author_Institution :
Dept. of Comput. Sci. & Eng., South Univ., Tampa, FL
Abstract :
We explore an unconventional front in computing,which we call magnetic field-based computing (MFC), that harnesses the energy minimization aspects of a collection of nanomagnets to solve directly quadratic energy minimization problems, such as those arising in computationaolly intensive computer vision tasks. The Hamiltonian of a collection of bipolar nanomagnets is governed by the pairwise dipolar interactions.The ground state of a nanomagnet collection minimizes this Hamiltonian. We have devised a computational method, based on multi-dimensional scaling, to decide upon the spatial arrangement of nanomagnets that matches a particular quadratic minimization problem. Each variable is represented by a nanomagnet and the distances between them are such that the dipolar interactions match the corresponding pairwise energy term in the original optimization problem. We select the nanomagnets that participate in a specific computation from a field of regularly placed nanomagnets. The nanomagnets that do not participate are deselected using transverse magnetic fields. We demonstrate these ideas by solving Landau-Lifshitz equations as implemented in the NISTpsilas micro-magnetic OOMMF software.
Keywords :
computer vision; electrical engineering computing; micromagnetics; minimisation; multidimensional systems; Hamiltonian; Landau-Lifshitz equations; bipolar nanomagnets; computer vision; directly quadratic energy minimization; ground state; magnetic field-based computing; micro-magnetic OOMMF software; multi-dimensional scaling; spatial arrangement; Circuit testing; Computer vision; Fabrication; Magnetic anisotropy; Magnetic domains; Magnetic fields; Magnetic materials; Minimization; Nanoscale devices; Perpendicular magnetic anisotropy; Computer Vision; Field Coupled Computing; Nanocomputing; Nanomagnets;
Conference_Titel :
Design and Test of Nano Devices, Circuits and Systems, 2008 IEEE International Workshop on
Conference_Location :
Cambridge, MA
Print_ISBN :
978-0-7695-3379-7
DOI :
10.1109/NDCS.2008.13